Explain why single-nucleotide mutations in DNA occur at a constant rate, but the rate of protein evolution varies.

Curren'S Math For Meds: Dosages & Sol
11th Edition
ISBN:9781305143531
Author:CURREN
Publisher:CURREN
Chapter9: Parenteral Medication Labels And Dosage Calculation
Section: Chapter Questions
Problem 6.4P
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#19 please.
(2) Brief carboxypeptidase A treatment yields F and T.
Peptide B
(3) Dansyl chloride treatment yields T.
(4) Brief carboxypeptidase A treatment yields Y and D.
(e) Trypsin treatment results in no fragmentation of the polypeptide.
18. Compare the molecular mass (M) of horse heart apomyoglobin calculated from the two
adjacent peaks at 1884.7 and 1696.3, and 893.3 and 848.7 (Figure 5-16b). How do these
results compare with those in Sample Cafculation 5-1?
Protein Evolution
19. Explain why single-nucleotide mutations in DNA occur at a constant rate, but the rate of
protein evolution varies.
Rank the following residue positions in cytochrome c in order from least to most
conserved: 56, 61, 74, 85, and 89.
20.
Chanter 5 Proteins: Prinmary Structure 47
Transcribed Image Text:(2) Brief carboxypeptidase A treatment yields F and T. Peptide B (3) Dansyl chloride treatment yields T. (4) Brief carboxypeptidase A treatment yields Y and D. (e) Trypsin treatment results in no fragmentation of the polypeptide. 18. Compare the molecular mass (M) of horse heart apomyoglobin calculated from the two adjacent peaks at 1884.7 and 1696.3, and 893.3 and 848.7 (Figure 5-16b). How do these results compare with those in Sample Cafculation 5-1? Protein Evolution 19. Explain why single-nucleotide mutations in DNA occur at a constant rate, but the rate of protein evolution varies. Rank the following residue positions in cytochrome c in order from least to most conserved: 56, 61, 74, 85, and 89. 20. Chanter 5 Proteins: Prinmary Structure 47
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